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High contrast at small separation – II. Impact on the dark hole of a realistic optical set-up with two deformable mirrors
- Source :
- Monthly Notices of the Royal Astronomical Society, Monthly Notices of the Royal Astronomical Society, Oxford University Press (OUP): Policy P-Oxford Open Option A, 2020, 498 (3), pp.3914-3926. ⟨10.1093/mnras/staa2106⟩
- Publication Year :
- 2020
- Publisher :
- HAL CCSD, 2020.
-
Abstract
- Future large space- or ground-based telescopes will offer the resolution and sensitivity to probe the habitable zone of a large sample of nearby stars for exo-Earth imaging. To this end, such facilities are expected to be equipped with a high-contrast instrument to efficiently suppress the light from an observed star to image these close-in companions. These observatories will include features such as segmented primary mirrors, secondary mirrors, and struts, leading to diffraction effects on the star image that will limit the instrument contrast. To overcome these constraints, a promising method consists in combining coronagraphy and wavefront shaping to reduce starlight at small separations and generate a dark region within the image to enhance the exoplanet signal. We aim to study the limitations of this combination when observing short-orbit planets. Our analysis is focused on SPEED, the Nice test bed with coronagraphy, wavefront shaping with deformable mirrors (DMs), and complex telescope aperture shape to determine the main realistic parameters that limit contrast at small separations. We develop an end-to-end simulator of this bench with Fresnel propagation effects to study the impact of large phase and amplitude errors from the test-bed optical components and defects from the wavefront shaping system on the final image contrast. We numerically show that the DM finite stroke and non-functional actuators, coronagraph manufacturing errors, and near-focal-plane phase errors represent the major limitations for high-contrast imaging of exoplanets at small separations. We also show that a carefully defined optical set-up opens the path to high contrast at small separation.
- Subjects :
- Aperture
Phase (waves)
FOS: Physical sciences
01 natural sciences
Deformable mirror
law.invention
methods: numerical
010309 optics
Telescope
Optics
law
0103 physical sciences
010303 astronomy & astrophysics
Coronagraph
Instrumentation and Methods for Astrophysics (astro-ph.IM)
planetary systems
Wavefront
Physics
[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics]
[SDU.ASTR]Sciences of the Universe [physics]/Astrophysics [astro-ph]
business.industry
Astrophysics::Instrumentation and Methods for Astrophysics
techniques: high angular resolution
Astronomy and Astrophysics
Exoplanet
Starlight
instrumentation: miscellaneous
Space and Planetary Science
techniques: miscellaneous
Astrophysics::Earth and Planetary Astrophysics
business
Astrophysics - Instrumentation and Methods for Astrophysics
[PHYS.ASTR]Physics [physics]/Astrophysics [astro-ph]
Subjects
Details
- Language :
- English
- ISSN :
- 00358711 and 13652966
- Database :
- OpenAIRE
- Journal :
- Monthly Notices of the Royal Astronomical Society, Monthly Notices of the Royal Astronomical Society, Oxford University Press (OUP): Policy P-Oxford Open Option A, 2020, 498 (3), pp.3914-3926. ⟨10.1093/mnras/staa2106⟩
- Accession number :
- edsair.doi.dedup.....8526517f66240798958f37b26c19cfad
- Full Text :
- https://doi.org/10.1093/mnras/staa2106⟩